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497 lines
19 KiB
Rust
497 lines
19 KiB
Rust
//! Conditional compilation stripping.
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use std::iter;
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use rustc_ast::token::{Delimiter, Token, TokenKind};
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use rustc_ast::tokenstream::{
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AttrTokenStream, AttrTokenTree, LazyAttrTokenStream, Spacing, TokenTree,
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};
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use rustc_ast::{
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self as ast, AttrKind, AttrStyle, Attribute, HasAttrs, HasTokens, MetaItem, MetaItemInner,
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NodeId, NormalAttr,
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};
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use rustc_attr_parsing as attr;
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use rustc_data_structures::flat_map_in_place::FlatMapInPlace;
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use rustc_feature::{
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ACCEPTED_LANG_FEATURES, AttributeSafety, EnabledLangFeature, EnabledLibFeature, Features,
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REMOVED_LANG_FEATURES, UNSTABLE_LANG_FEATURES,
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};
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use rustc_lint_defs::BuiltinLintDiag;
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use rustc_parse::validate_attr;
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use rustc_session::Session;
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use rustc_session::parse::feature_err;
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use rustc_span::{STDLIB_STABLE_CRATES, Span, Symbol, sym};
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use thin_vec::ThinVec;
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use tracing::instrument;
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use crate::errors::{
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CrateNameInCfgAttr, CrateTypeInCfgAttr, FeatureNotAllowed, FeatureRemoved,
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FeatureRemovedReason, InvalidCfg, MalformedFeatureAttribute, MalformedFeatureAttributeHelp,
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RemoveExprNotSupported,
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};
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/// A folder that strips out items that do not belong in the current configuration.
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pub struct StripUnconfigured<'a> {
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pub sess: &'a Session,
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pub features: Option<&'a Features>,
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/// If `true`, perform cfg-stripping on attached tokens.
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/// This is only used for the input to derive macros,
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/// which needs eager expansion of `cfg` and `cfg_attr`
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pub config_tokens: bool,
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pub lint_node_id: NodeId,
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}
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pub fn features(sess: &Session, krate_attrs: &[Attribute], crate_name: Symbol) -> Features {
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fn feature_list(attr: &Attribute) -> ThinVec<ast::MetaItemInner> {
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if attr.has_name(sym::feature)
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&& let Some(list) = attr.meta_item_list()
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{
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list
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} else {
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ThinVec::new()
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}
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}
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let mut features = Features::default();
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// Process all features enabled in the code.
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for attr in krate_attrs {
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for mi in feature_list(attr) {
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let name = match mi.ident() {
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Some(ident) if mi.is_word() => ident.name,
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Some(ident) => {
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sess.dcx().emit_err(MalformedFeatureAttribute {
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span: mi.span(),
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help: MalformedFeatureAttributeHelp::Suggestion {
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span: mi.span(),
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suggestion: ident.name,
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},
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});
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continue;
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}
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None => {
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sess.dcx().emit_err(MalformedFeatureAttribute {
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span: mi.span(),
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help: MalformedFeatureAttributeHelp::Label { span: mi.span() },
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});
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continue;
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}
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};
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// If the enabled feature has been removed, issue an error.
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if let Some(f) = REMOVED_LANG_FEATURES.iter().find(|f| name == f.feature.name) {
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let pull_note = if let Some(pull) = f.pull {
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format!(
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"; see <https://github.com/rust-lang/rust/pull/{}> for more information",
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pull
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)
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} else {
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"".to_owned()
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};
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sess.dcx().emit_err(FeatureRemoved {
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span: mi.span(),
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reason: f.reason.map(|reason| FeatureRemovedReason { reason }),
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removed_rustc_version: f.feature.since,
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current_rustc_version: sess.cfg_version,
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pull_note,
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});
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continue;
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}
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// If the enabled feature is stable, record it.
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if let Some(f) = ACCEPTED_LANG_FEATURES.iter().find(|f| name == f.name) {
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features.set_enabled_lang_feature(EnabledLangFeature {
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gate_name: name,
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attr_sp: mi.span(),
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stable_since: Some(Symbol::intern(f.since)),
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});
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continue;
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}
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// If `-Z allow-features` is used and the enabled feature is
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// unstable and not also listed as one of the allowed features,
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// issue an error.
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if let Some(allowed) = sess.opts.unstable_opts.allow_features.as_ref() {
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if allowed.iter().all(|f| name.as_str() != f) {
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sess.dcx().emit_err(FeatureNotAllowed { span: mi.span(), name });
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continue;
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}
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}
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// If the enabled feature is unstable, record it.
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if UNSTABLE_LANG_FEATURES.iter().find(|f| name == f.name).is_some() {
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// When the ICE comes a standard library crate, there's a chance that the person
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// hitting the ICE may be using -Zbuild-std or similar with an untested target.
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// The bug is probably in the standard library and not the compiler in that case,
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// but that doesn't really matter - we want a bug report.
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if features.internal(name) && !STDLIB_STABLE_CRATES.contains(&crate_name) {
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sess.using_internal_features.store(true, std::sync::atomic::Ordering::Relaxed);
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}
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features.set_enabled_lang_feature(EnabledLangFeature {
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gate_name: name,
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attr_sp: mi.span(),
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stable_since: None,
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});
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continue;
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}
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// Otherwise, the feature is unknown. Enable it as a lib feature.
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// It will be checked later whether the feature really exists.
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features
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.set_enabled_lib_feature(EnabledLibFeature { gate_name: name, attr_sp: mi.span() });
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// Similar to above, detect internal lib features to suppress
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// the ICE message that asks for a report.
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if features.internal(name) && !STDLIB_STABLE_CRATES.contains(&crate_name) {
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sess.using_internal_features.store(true, std::sync::atomic::Ordering::Relaxed);
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}
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}
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}
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features
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}
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pub fn pre_configure_attrs(sess: &Session, attrs: &[Attribute]) -> ast::AttrVec {
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let strip_unconfigured = StripUnconfigured {
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sess,
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features: None,
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config_tokens: false,
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lint_node_id: ast::CRATE_NODE_ID,
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};
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attrs
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.iter()
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.flat_map(|attr| strip_unconfigured.process_cfg_attr(attr))
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.take_while(|attr| !is_cfg(attr) || strip_unconfigured.cfg_true(attr).0)
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.collect()
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}
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pub(crate) fn attr_into_trace(mut attr: Attribute, trace_name: Symbol) -> Attribute {
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match &mut attr.kind {
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AttrKind::Normal(normal) => {
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let NormalAttr { item, tokens } = &mut **normal;
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item.path.segments[0].ident.name = trace_name;
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// This makes the trace attributes unobservable to token-based proc macros.
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*tokens = Some(LazyAttrTokenStream::new_direct(AttrTokenStream::default()));
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}
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AttrKind::DocComment(..) => unreachable!(),
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}
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attr
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}
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#[macro_export]
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macro_rules! configure {
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($this:ident, $node:ident) => {
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match $this.configure($node) {
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Some(node) => node,
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None => return Default::default(),
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}
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};
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}
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impl<'a> StripUnconfigured<'a> {
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pub fn configure<T: HasAttrs + HasTokens>(&self, mut node: T) -> Option<T> {
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self.process_cfg_attrs(&mut node);
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self.in_cfg(node.attrs()).then(|| {
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self.try_configure_tokens(&mut node);
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node
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})
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}
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fn try_configure_tokens<T: HasTokens>(&self, node: &mut T) {
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if self.config_tokens {
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if let Some(Some(tokens)) = node.tokens_mut() {
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let attr_stream = tokens.to_attr_token_stream();
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*tokens = LazyAttrTokenStream::new_direct(self.configure_tokens(&attr_stream));
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}
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}
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}
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/// Performs cfg-expansion on `stream`, producing a new `AttrTokenStream`.
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/// This is only used during the invocation of `derive` proc-macros,
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/// which require that we cfg-expand their entire input.
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/// Normal cfg-expansion operates on parsed AST nodes via the `configure` method
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fn configure_tokens(&self, stream: &AttrTokenStream) -> AttrTokenStream {
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fn can_skip(stream: &AttrTokenStream) -> bool {
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stream.0.iter().all(|tree| match tree {
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AttrTokenTree::AttrsTarget(_) => false,
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AttrTokenTree::Token(..) => true,
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AttrTokenTree::Delimited(.., inner) => can_skip(inner),
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})
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}
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if can_skip(stream) {
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return stream.clone();
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}
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let trees: Vec<_> = stream
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.0
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.iter()
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.filter_map(|tree| match tree.clone() {
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AttrTokenTree::AttrsTarget(mut target) => {
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// Expand any `cfg_attr` attributes.
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target.attrs.flat_map_in_place(|attr| self.process_cfg_attr(&attr));
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if self.in_cfg(&target.attrs) {
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target.tokens = LazyAttrTokenStream::new_direct(
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self.configure_tokens(&target.tokens.to_attr_token_stream()),
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);
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Some(AttrTokenTree::AttrsTarget(target))
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} else {
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// Remove the target if there's a `cfg` attribute and
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// the condition isn't satisfied.
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None
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}
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}
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AttrTokenTree::Delimited(sp, spacing, delim, mut inner) => {
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inner = self.configure_tokens(&inner);
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Some(AttrTokenTree::Delimited(sp, spacing, delim, inner))
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}
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AttrTokenTree::Token(Token { kind, .. }, _) if kind.is_delim() => {
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panic!("Should be `AttrTokenTree::Delimited`, not delim tokens: {:?}", tree);
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}
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AttrTokenTree::Token(token, spacing) => Some(AttrTokenTree::Token(token, spacing)),
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})
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.collect();
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AttrTokenStream::new(trees)
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}
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/// Parse and expand all `cfg_attr` attributes into a list of attributes
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/// that are within each `cfg_attr` that has a true configuration predicate.
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///
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/// Gives compiler warnings if any `cfg_attr` does not contain any
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/// attributes and is in the original source code. Gives compiler errors if
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/// the syntax of any `cfg_attr` is incorrect.
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fn process_cfg_attrs<T: HasAttrs>(&self, node: &mut T) {
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node.visit_attrs(|attrs| {
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attrs.flat_map_in_place(|attr| self.process_cfg_attr(&attr));
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});
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}
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fn process_cfg_attr(&self, attr: &Attribute) -> Vec<Attribute> {
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if attr.has_name(sym::cfg_attr) {
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self.expand_cfg_attr(attr, true)
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} else {
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vec![attr.clone()]
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}
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}
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/// Parse and expand a single `cfg_attr` attribute into a list of attributes
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/// when the configuration predicate is true, or otherwise expand into an
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/// empty list of attributes.
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///
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/// Gives a compiler warning when the `cfg_attr` contains no attributes and
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/// is in the original source file. Gives a compiler error if the syntax of
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/// the attribute is incorrect.
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pub(crate) fn expand_cfg_attr(&self, cfg_attr: &Attribute, recursive: bool) -> Vec<Attribute> {
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validate_attr::check_attribute_safety(
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&self.sess.psess,
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Some(AttributeSafety::Normal),
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&cfg_attr,
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ast::CRATE_NODE_ID,
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);
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// A trace attribute left in AST in place of the original `cfg_attr` attribute.
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// It can later be used by lints or other diagnostics.
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let trace_attr = attr_into_trace(cfg_attr.clone(), sym::cfg_attr_trace);
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let Some((cfg_predicate, expanded_attrs)) =
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rustc_parse::parse_cfg_attr(cfg_attr, &self.sess.psess)
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else {
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return vec![trace_attr];
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};
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// Lint on zero attributes in source.
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if expanded_attrs.is_empty() {
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self.sess.psess.buffer_lint(
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rustc_lint_defs::builtin::UNUSED_ATTRIBUTES,
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cfg_attr.span,
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ast::CRATE_NODE_ID,
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BuiltinLintDiag::CfgAttrNoAttributes,
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);
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}
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if !attr::cfg_matches(&cfg_predicate, &self.sess, self.lint_node_id, self.features) {
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return vec![trace_attr];
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}
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if recursive {
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// We call `process_cfg_attr` recursively in case there's a
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// `cfg_attr` inside of another `cfg_attr`. E.g.
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// `#[cfg_attr(false, cfg_attr(true, some_attr))]`.
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let expanded_attrs = expanded_attrs
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.into_iter()
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.flat_map(|item| self.process_cfg_attr(&self.expand_cfg_attr_item(cfg_attr, item)));
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iter::once(trace_attr).chain(expanded_attrs).collect()
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} else {
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let expanded_attrs =
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expanded_attrs.into_iter().map(|item| self.expand_cfg_attr_item(cfg_attr, item));
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iter::once(trace_attr).chain(expanded_attrs).collect()
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}
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}
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fn expand_cfg_attr_item(
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&self,
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cfg_attr: &Attribute,
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(item, item_span): (ast::AttrItem, Span),
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) -> Attribute {
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// Convert `#[cfg_attr(pred, attr)]` to `#[attr]`.
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// Use the `#` from `#[cfg_attr(pred, attr)]` in the result `#[attr]`.
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let mut orig_trees = cfg_attr.token_trees().into_iter();
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let Some(TokenTree::Token(pound_token @ Token { kind: TokenKind::Pound, .. }, _)) =
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orig_trees.next()
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else {
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panic!("Bad tokens for attribute {cfg_attr:?}");
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};
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// For inner attributes, we do the same thing for the `!` in `#![attr]`.
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let mut trees = if cfg_attr.style == AttrStyle::Inner {
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let Some(TokenTree::Token(bang_token @ Token { kind: TokenKind::Bang, .. }, _)) =
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orig_trees.next()
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else {
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panic!("Bad tokens for attribute {cfg_attr:?}");
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};
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vec![
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AttrTokenTree::Token(pound_token, Spacing::Joint),
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AttrTokenTree::Token(bang_token, Spacing::JointHidden),
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]
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} else {
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vec![AttrTokenTree::Token(pound_token, Spacing::JointHidden)]
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};
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// And the same thing for the `[`/`]` delimiters in `#[attr]`.
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let Some(TokenTree::Delimited(delim_span, delim_spacing, Delimiter::Bracket, _)) =
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orig_trees.next()
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else {
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panic!("Bad tokens for attribute {cfg_attr:?}");
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};
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trees.push(AttrTokenTree::Delimited(
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delim_span,
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delim_spacing,
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Delimiter::Bracket,
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item.tokens
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.as_ref()
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.unwrap_or_else(|| panic!("Missing tokens for {item:?}"))
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.to_attr_token_stream(),
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));
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let tokens = Some(LazyAttrTokenStream::new_direct(AttrTokenStream::new(trees)));
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let attr = ast::attr::mk_attr_from_item(
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&self.sess.psess.attr_id_generator,
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item,
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tokens,
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cfg_attr.style,
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item_span,
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);
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if attr.has_name(sym::crate_type) {
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self.sess.dcx().emit_err(CrateTypeInCfgAttr { span: attr.span });
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}
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if attr.has_name(sym::crate_name) {
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self.sess.dcx().emit_err(CrateNameInCfgAttr { span: attr.span });
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}
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attr
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}
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/// Determines if a node with the given attributes should be included in this configuration.
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fn in_cfg(&self, attrs: &[Attribute]) -> bool {
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attrs.iter().all(|attr| !is_cfg(attr) || self.cfg_true(attr).0)
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}
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pub(crate) fn cfg_true(&self, attr: &Attribute) -> (bool, Option<MetaItem>) {
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let meta_item = match validate_attr::parse_meta(&self.sess.psess, attr) {
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Ok(meta_item) => meta_item,
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Err(err) => {
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err.emit();
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return (true, None);
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}
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};
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validate_attr::deny_builtin_meta_unsafety(&self.sess.psess, &meta_item);
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(
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parse_cfg(&meta_item, self.sess).is_none_or(|meta_item| {
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attr::cfg_matches(meta_item, &self.sess, self.lint_node_id, self.features)
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}),
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Some(meta_item),
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)
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}
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/// If attributes are not allowed on expressions, emit an error for `attr`
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#[instrument(level = "trace", skip(self))]
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pub(crate) fn maybe_emit_expr_attr_err(&self, attr: &Attribute) {
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if self.features.is_some_and(|features| !features.stmt_expr_attributes())
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&& !attr.span.allows_unstable(sym::stmt_expr_attributes)
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{
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let mut err = feature_err(
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&self.sess,
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sym::stmt_expr_attributes,
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attr.span,
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crate::fluent_generated::expand_attributes_on_expressions_experimental,
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);
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if attr.is_doc_comment() {
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err.help(if attr.style == AttrStyle::Outer {
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crate::fluent_generated::expand_help_outer_doc
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} else {
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crate::fluent_generated::expand_help_inner_doc
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});
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}
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err.emit();
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}
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}
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#[instrument(level = "trace", skip(self))]
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pub fn configure_expr(&self, expr: &mut ast::Expr, method_receiver: bool) {
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if !method_receiver {
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for attr in expr.attrs.iter() {
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self.maybe_emit_expr_attr_err(attr);
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}
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}
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// If an expr is valid to cfg away it will have been removed by the
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// outer stmt or expression folder before descending in here.
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// Anything else is always required, and thus has to error out
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// in case of a cfg attr.
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//
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// N.B., this is intentionally not part of the visit_expr() function
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// in order for filter_map_expr() to be able to avoid this check
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if let Some(attr) = expr.attrs().iter().find(|a| is_cfg(a)) {
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self.sess.dcx().emit_err(RemoveExprNotSupported { span: attr.span });
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}
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self.process_cfg_attrs(expr);
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self.try_configure_tokens(&mut *expr);
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}
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}
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pub fn parse_cfg<'a>(meta_item: &'a MetaItem, sess: &Session) -> Option<&'a MetaItemInner> {
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let span = meta_item.span;
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match meta_item.meta_item_list() {
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None => {
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sess.dcx().emit_err(InvalidCfg::NotFollowedByParens { span });
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None
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}
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Some([]) => {
|
|
sess.dcx().emit_err(InvalidCfg::NoPredicate { span });
|
|
None
|
|
}
|
|
Some([_, .., l]) => {
|
|
sess.dcx().emit_err(InvalidCfg::MultiplePredicates { span: l.span() });
|
|
None
|
|
}
|
|
Some([single]) => match single.meta_item_or_bool() {
|
|
Some(meta_item) => Some(meta_item),
|
|
None => {
|
|
sess.dcx().emit_err(InvalidCfg::PredicateLiteral { span: single.span() });
|
|
None
|
|
}
|
|
},
|
|
}
|
|
}
|
|
|
|
fn is_cfg(attr: &Attribute) -> bool {
|
|
attr.has_name(sym::cfg)
|
|
}
|